Native-state solubility and transfer free energy as predictive tools for selecting excipients to include in protein formulation development studies

被引:57
作者
Banks, Douglas D. [1 ]
Latypov, Ramil F. [1 ]
Ketchem, Randal R. [2 ]
Woodard, Jon [1 ]
Scavezze, Joanna L. [1 ]
Siska, Christine C. [1 ]
Razinkov, Vladimir I. [1 ]
机构
[1] Amgen Inc, Dept Drug Prod Dev, Seattle, WA 98119 USA
[2] Amgen Inc, Dept Therapeut Discovery, Seattle, WA 98119 USA
关键词
protein formulation; aggregation; conformational stability; solubility; thermodynamics; kinetics; transfer free energy; excipient; monoclonal antibody; COLONY-STIMULATING FACTOR; PHYSICAL-CHEMISTRY; AMINO-ACIDS; AGGREGATION; STABILITY; OSMOLYTES; ASSOCIATION; HEMOGLOBIN; MECHANISM; BACKBONE;
D O I
10.1002/jps.23219
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
In the present report, two formulation strategies, based on different aggregation models, were compared for their ability to quickly predict which excipients (cosolutes) would minimize the aggregation rate of an immunoglobulin G1 monoclonal antibody (mAb-1) stored for long term at refrigerated and room temperatures. The first formulation strategy assumed that a conformational change to an aggregation-prone intermediate state was necessary to initiate the association process and the second formulation strategy assumed that protein self-association was instead controlled by the solubility of the native state. The results of these studies indicate that the stabilizing effect of excipients formulated at isotonic concentrations is derived from their ability to solubilize the native state, not by the increase of protein conformational stability induced by their presence. The degree the excipients solvate the native state was determined from the apparent transfer free energy of the native state from water into each of the excipients. These values for mAb-1 and two additional therapeutic antibodies correlated well to their long-term 4 degrees C and room temperature aggregation data and were calculated using only the literature values for the apparent transfer free energies of the amino acids into the various excipients and the three-dimensional models of the antibodies. (C) 2012 Wiley Periodicals, Inc. and the American Pharmacists Association J Pharm Sci 101:27202732, 2012
引用
收藏
页码:2720 / 2732
页数:13
相关论文
共 54 条
[1]   ACID UNFOLDING AND SELF-ASSOCIATION OF RECOMBINANT ESCHERICHIA-COLI DERIVED HUMAN INTERFERON-GAMMA [J].
ARAKAWA, T ;
HSU, YR ;
YPHANTIS, DA .
BIOCHEMISTRY, 1987, 26 (17) :5428-5432
[2]   Suppression of protein interactions by arginine: A proposed mechanism of the arginine effects [J].
Arakawa, Tsutomu ;
Ejima, Daisuke ;
Tsumoto, Kouhei ;
Obeyama, Noriyuki ;
Tanaka, Yoshikazu ;
Kita, Yoshiko ;
Timasheff, Serge N. .
BIOPHYSICAL CHEMISTRY, 2007, 127 (1-2) :1-8
[3]   Predicting the energetics of osmolyte-induced protein folding/unfolding [J].
Auton, M ;
Bolen, DW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (42) :15065-15068
[4]   Application of the transfer model to understand how naturally occuring osmolytes affect protein stability [J].
Auton, Matthew ;
Bolen, D. Wayne .
OSMOSENSING AND OSMOSIGNALING, 2007, 428 :397-418
[5]   Osmolyte effects on protein stability and solubility: A balancing act between backbone and side-chains [J].
Auton, Matthew ;
Roesgen, Joerg ;
Sinev, Mikhail ;
Holthauzen, Luis Marcelo F. ;
Bolen, D. Wayne .
BIOPHYSICAL CHEMISTRY, 2011, 159 (01) :90-99
[6]   Structural thermodynamics of protein preferential solvation: Osmolyte solvation of proteins, aminoacids, and peptides [J].
Auton, Matthew ;
Bolen, D. Wayne ;
Rosgen, Jorg .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2008, 73 (04) :802-813
[7]   Effects of naturally occurring osmolytes on protein stability and solubility: issues important in protein crystallization [J].
Bolen, DW .
METHODS, 2004, 34 (03) :312-322
[8]   Predicting Accelerated Aggregation Rates for Monoclonal Antibody Formulations, and Challenges for Low-Temperature Predictions [J].
Brummitt, Rebecca K. ;
Nesta, Douglas P. ;
Roberts, Christopher J. .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2011, 100 (10) :4234-4243
[9]  
Carpenter JF, 1999, METHOD ENZYMOL, V309, P236
[10]   Conformational characterization of oligomeric intermediates and aggregates in β-lactoglobulin heat aggregation [J].
Carrotta, R ;
Bauer, R ;
Waninge, R ;
Rischel, C .
PROTEIN SCIENCE, 2001, 10 (07) :1312-1318